Can anyone explain what causes all the nil values in the following?
(defn my-for []
(for [n (range 0 40)]
(println n)))
(my-for)
Result (omitting some numerical values):
(0 1 2 ... 30 31 nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil 32 33 ... 38 39 nil nil nil nil nil nil nil nil nil)
this is a mix of the output of the print statement and printing the result of the for expression.
the for produces a sequence of the return value of println, which is always nil
user> (defn my-for []
(for [n (range 0 40)]
(println n)))
#'user/my-for
user> (def ansewr (doall (my-for)))
0
1
2
3
...
38
39
#'user/ansewr
user> ansewr
(nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil nil)
These two are being printed ontop of each other by the repl
for - lazy seqs are sometimes calculated in chunks of 32 at a time.
for is a list comprehension operator, its return value is a list. The return value of println is always nil, and those are the values that for is using to build the list it returns. Since you are (println n), your prints interleave with the REPL's printing of the return value for the for.
If you avoid the use of println in the for, the REPL will show you the list of numbers from 0 to 39:
(defn my-for []
(for [n (range 0 40)] n))
(my-for)
;= (0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39)
If you only want to print the values then you can use the doseq form, which is used for side-effecting functions (such as println) and always returns nil:
(defn my-doseq []
(doseq [n (range 0 40)]
(println n)))
(my-doseq)
println returns nil surely explains why I experienced this as an odd behaviour. Great info on the doseq form.
Jun 28, 2013 at 21:11